Temperature scaling in a dense vibrofluidized granular material

Sunthar, P. ; Kumaran, V. (1999) Temperature scaling in a dense vibrofluidized granular material Physical Review E, 60 (2). pp. 1951-1955. ISSN 1063-651X

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Official URL: http://pre.aps.org/abstract/PRE/v60/i2/p1951_1

Related URL: http://dx.doi.org/10.1103/PhysRevE.60.1951

Abstract

The leading order "temperature" of a dense two-dimensional granular material fluidized by external vibrations is determined. The grain interactions are characterized by inelastic collisions, but the coefficient of restitution is considered to be close to 1, so that the dissipation of energy during a collision is small compared to the average energy of a particle. An asymptotic solution is obtained where the particles are considered to be elastic in the leading approximation. The velocity distribution is a Maxwell-Boltzmann distribution in the leading approximation. The density profile is determined by solving the momentum balance equation in the vertical direction, where the relation between the pressure and density is provided by the virial equation of state. The temperature is determined by relating the source of energy due to the vibrating surface and the energy dissipation due to inelastic collisions. The predictions of the present analysis show good agreement with simulation results at higher densities where theories for a dilute vibrated granular material, with the pressure-density relation provided by the ideal gas law, are in error.

Item Type:Article
Source:Copyright of this article belongs to American Physical Society.
ID Code:18603
Deposited On:17 Nov 2010 12:44
Last Modified:17 May 2016 03:18

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